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PMID: 1713947 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Interfering with calcium release suppresses I gamma, the "hump" component of intramembranous charge movement in skeletal muscle.

The Journal of general physiology ·Vol. 97 ·No. 5 ·1991-05-00 ·Pages 845-84

Csernoch L, Pizarro G, Uribe I, Rodríguez M, Ríos E

Abstract

Four manifestations of excitation-contraction (E-C) coupling were derived from measurements in cut skeletal muscle fibers of the frog, voltage clamped in a Vaseline-gap chamber: intramembranous charge movement currents, myoplasmic [Ca2+] transients, flux of calcium release from the sarcoplasmic reticulum (SR), and the intrinsic optical transparency change that accompanies calcium release. In attempts to suppress Ca release by direct effects on the SR, three interventions were applied: (a) a conditioning pulse that causes calcium release and inhibits release in subsequent pulses by Ca-dependent inactivation; (b) a series of brief, large pulses, separated by long intervals (greater than 700 ms), which deplete Ca2+ in the SR; and (c) intracellular application of the release channel blocker ruthenium red. All these reduced calcium release flux. None was expected to affect directly the voltage sensor of the T-tubule; however, all of them reduced or eliminated a component of charge movement current with the following characteristics: (a) delayed onset, peaking 10-20 ms into the pulse; (b) current reversal during the pulse, with an inward phase after the outward peak; and (c) OFF transient of smaller magnitude than the ON, of variable polarity, and sometimes biphasic. When the total charge movement current had a visible hump, the positive phase of the current eliminated by the interventions agreed with the hump in timing and size. The component of charge movement current blocked by the interventions was greater and had a greater inward phase in slack fibers with high [EGTA] inside than in stretched fibers with no EGTA. Its amplitude at -40 mV was on average 0.26 A/F (SEM 0.03) in slack fibers. The waveform of release flux determined from the Ca transients measured simultaneously with the membrane currents had, as described previously (Melzer, W., E. Ríos, and M. F. Schneider. 1984. Biophysical Journal. 45:637-641), an early peak followed by a descent to a steady level during the pulse. The time at which this peak occurred was highly correlated with the time to peak of the current suppressed, occurring on average 6.9 ms later (SEM 0.73 ms). The current suppressed by the above interventions in all cases had a time course similar to the time derivative of the release flux; specifically, the peak of the time derivative of release flux preceded the peak of the current suppressed by 0.7 ms (SEM 0.6 ms). The magnitude of the current blocked was highly correlated with the inhibitory effect of the interventions on Ca2+ release flux.(ABSTRACT TRUNCATED AT 400 WORDS)

MeSH Terms
Animals Calcium/metabolism Egtazic Acid/pharmacology Intracellular Membranes/metabolism Kinetics Membrane Potentials/physiology Models, Biological Muscles/metabolism Rana pipiens Ranidae Ruthenium Red Sarcoplasmic Reticulum/drug effects,metabolism Tetracaine/pharmacology
Chemicals
Tetracaine Ruthenium Red Egtazic Acid Calcium
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Csernoch L
Department of Physiology, Rush University School of Medicine, Chicago, Illinois 60612.
Pizarro G
Uribe I
Rodríguez M
Ríos E
References (49)
49 references, click to expand
  1. Purification and reconstitution of the calcium release channel from skeletal muscle.
    Nature. 1988 Jan 28;331(6154):315-9 PMID: 2448641
  2. Changes in light scattered by striated muscle during excitation-contraction coupling.
    Am J Physiol. 1969 Nov;217(5):1425-30 PMID: 5346309
  3. Ryanodine receptor of skeletal muscle is a gap junction-type channel.
    Science. 1988 Oct 7;242(4875):99-102 PMID: 2459777
  4. Anatomical distribution of voltage-dependent membrane capacitance in frog skeletal muscle fibers.
    J Gen Physiol. 1989 Mar;93(3):565-84 PMID: 2784827
  5. Purified ryanodine receptor from skeletal muscle sarcoplasmic reticulum is the Ca2+-permeable pore of the calcium release channel.
    J Biol Chem. 1987 Dec 5;262(34):16636-43 PMID: 2445748
  6. Calcium-ryanodine receptor complex. Solubilization and partial characterization from skeletal muscle junctional sarcoplasmic reticulum vesicles.
    J Biol Chem. 1986 Jul 5;261(19):8643-8 PMID: 3722165
  7. Intramembrane charge movements in skeletal muscle.
    Physiol Rev. 1988 Oct;68(4):1197-47 PMID: 2460881
  8. Calcium-gated calcium channels in sarcoplasmic reticulum of rabbit skinned skeletal muscle fibers.
    J Gen Physiol. 1986 Feb;87(2):289-303 PMID: 2419485
  9. Sarcoplasmic reticulum contains adenine nucleotide-activated calcium channels.
    Nature. 1985 Aug 1-7;316(6027):446-9 PMID: 2410798
  10. Inhibitors of Ca2+ release from the isolated sarcoplasmic reticulum. I. Ca2+ channel blockers.
    Biochim Biophys Acta. 1985 Jun 11;816(1):9-17 PMID: 2408667
  11. Caffeine slows turn-off of calcium release in voltage clamped skeletal muscle fibers.
    Biophys J. 1989 Apr;55(4):793-7 PMID: 2720072
  12. Differential effects of tetracaine on charge movements and Ca2+ signals in frog skeletal muscle.
    J Gen Physiol. 1988 Nov;92(5):601-12 PMID: 3266232
  13. A general procedure for determining the rate of calcium release from the sarcoplasmic reticulum in skeletal muscle fibers.
    Biophys J. 1987 Jun;51(6):849-63 PMID: 3496921
  14. The effects of tetracaine on charge movement in fast twitch rat skeletal muscle fibres.
    J Physiol. 1990 Feb;421:633-44 PMID: 2348406
  15. Measurement and modification of free calcium transients in frog skeletal muscle fibres by a metallochromic indicator dye.
    J Physiol. 1983 Oct;343:161-96 PMID: 6606034
  16. Effect of caffeine on intramembrane charge movement and calcium transients in cut skeletal muscle fibres of the frog.
    J Physiol. 1983 Aug;341:559-78 PMID: 6604806
  17. Sarcoplasmic reticulum calcium release in frog skeletal muscle fibres estimated from Arsenazo III calcium transients.
    J Physiol. 1983 Nov;344:625-66 PMID: 6655593
  18. Membrane charge moved at contraction thresholds in skeletal muscle fibres.
    J Physiol. 1981 May;314:595-633 PMID: 6975815
  19. Effects of local anaesthetics on the relationship between charge movements and contractile thresholds in frog skeletal muscle.
    J Physiol. 1981 Nov;320:381-91 PMID: 6976433
  20. Pharmacological separation of charge movement components in frog skeletal muscle.
    J Physiol. 1982 Mar;324:375-87 PMID: 6980275
  21. Differential properties of two charge components in frog skeletal muscle.
    J Physiol. 1983 Apr;337:531-52 PMID: 6603513
  22. Pharmacological studies of charge movement in frog skeletal muscle.
    J Physiol. 1983 Apr;337:509-29 PMID: 6603512
  23. Mechanism of calcium release from skeletal sarcoplasmic reticulum.
    J Membr Biol. 1982;66(3):193-201 PMID: 6284941
  24. Time course of calcium release and removal in skeletal muscle fibers.
    Biophys J. 1984 Mar;45(3):637-41 PMID: 6608964
  25. Effects of tetracaine on charge movements and calcium signals in frog skeletal muscle fibers.
    Proc Natl Acad Sci U S A. 1983 Mar;80(5):1477-81 PMID: 6600842
  26. Stoichiometry of the reactions of calcium with the metallochromic indicator dyes antipyrylazo III and arsenazo III.
    Biophys J. 1981 Dec;36(3):607-21 PMID: 7326326
  27. Charge movement and membrane capacity in frog muscle.
    J Physiol. 1979 Apr;289:83-97 PMID: 458722
  28. Calcium-induced calcium release from fragmented sarcoplasmic reticulum.
    J Biochem. 1979 Oct;86(4):1147-50 PMID: 500582
  29. A gating signal for the potassium channel?
    Nature. 1977 Jun 30;267(5614):800-4 PMID: 302416
  30. Increased optical transparency associated with excitation--contraction coupling in voltage-clamped cut skeletal muscle fibres.
    Nature. 1977 Feb 10;265(5594):556-60 PMID: 299926
  31. The time course of potassium contractures of single muscle fibres.
    J Physiol. 1972 Jun;223(2):483-505 PMID: 5039284
  32. Turbidity, birefringence, and fluorescence changes in skeletal muscle coincident with the action potential.
    Science. 1969 Aug 8;165(3893):608-9 PMID: 4183325
  33. The voltage dependence of membrane capacity.
    J Physiol. 1976 Jan;254(2):317-38 PMID: 1082508
  34. Changes in transparency of muscle during a twitch.
    J Physiol. 1949 May;108(3):292-302 PMID: 18144922
  35. The relationship between Q gamma and Ca release from the sarcoplasmic reticulum in skeletal muscle.
    J Gen Physiol. 1991 May;97(5):913-47 PMID: 1650812
  36. Effect of the calcium buffer EGTA on the "hump" component of charge movement in skeletal muscle.
    J Gen Physiol. 1991 May;97(5):885-96 PMID: 1650811
  37. Contraction threshold and the "hump" component of charge movement in frog skeletal muscle.
    J Gen Physiol. 1991 May;97(5):897-911 PMID: 1865176
  38. Intramembranous charge movement in frog cut twitch fibers mounted in a double vaseline-gap chamber.
    J Gen Physiol. 1990 Aug;96(2):257-97 PMID: 2212983
  39. Inactivation of calcium release from the sarcoplasmic reticulum in frog skeletal muscle.
    J Physiol. 1988 Nov;405:727-45 PMID: 2855645
  40. Effects of intracellular ruthenium red on excitation-contraction coupling in intact frog skeletal muscle fibres.
    J Physiol. 1989 Jan;408:617-35 PMID: 2476559
  41. Depletion of calcium from the sarcoplasmic reticulum during calcium release in frog skeletal muscle.
    J Physiol. 1987 Nov;392:167-92 PMID: 2451721
  42. Voltage sensors of the frog skeletal muscle membrane require calcium to function in excitation-contraction coupling.
    J Physiol. 1988 Apr;398:475-505 PMID: 3260626
  43. Effects of extracellular calcium on calcium movements of excitation-contraction coupling in frog skeletal muscle fibres.
    J Physiol. 1988 Apr;398:441-73 PMID: 2455801
  44. Intramembrane charge movement and calcium release in frog skeletal muscle.
    J Physiol. 1986 Apr;373:481-511 PMID: 3489092
  45. Components of charge movement in rabbit skeletal muscle: the effect of tetracaine and nifedipine.
    J Physiol. 1986 Jul;376:85-100 PMID: 3795083
  46. Caffeine potentiation of calcium release in frog skeletal muscle fibres.
    J Physiol. 1986 Jun;375:535-59 PMID: 3795067
  47. Voltage dependent charge movement of skeletal muscle: a possible step in excitation-contraction coupling.
    Nature. 1973 Mar 23;242(5395):244-6 PMID: 4540479
  48. Sizes of components in frog skeletal muscle measured by methods of stereology.
    J Gen Physiol. 1975 Jul;66(1):31-45 PMID: 1159401
  49. Intramembrane charge movement in frog skeletal muscle fibres. Properties of charge 2.
    J Physiol. 1987 Jun;387:489-517 PMID: 3116215
Article Info
Journal
The Journal of general physiology
Abbr.
J Gen Physiol
ISSN
0022-1295
Published
1991-05-00
Pages
845-84
Language
English
Region
United States
NLM ID
2985110R
PMCID
PMC2216499
Subset
IM
Grants
NIAMS NIH HHS · R01-AR 32808 · United States
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